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CLC number: TU433

On-line Access: 2024-08-27

Received: 2023-10-17

Revision Accepted: 2024-05-08

Crosschecked: 2014-03-17

Cited: 1

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Citations:  Bibtex RefMan EndNote GB/T7714

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Journal of Zhejiang University SCIENCE  A

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A modified creep index and its application to viscoplastic modelling of soft clays


Author(s):  Qi-yin Zhu1, Ze-xiang Wu1, Yan-ling Li1, Chang-jie Xu2;3, Jian-hua Wang1, Xiao-he Xia1

Affiliation(s):  1. Department of Civil Engineering, Shanghai Jiao Tong University, Shanghai 200240, China;2. School of Civil Engineering and Architecture, East China Jiaotong University, Nanchang 330013, China;3. Research Center of Coastal and Urban Geotechnical Engineering, Zhejiang University, Hangzhou 310058, China

Corresponding email(s):  qiyin.zhu@gmail.com

Key Words:  Clays, Creep, Consolidation test, Embankment, Finite element method, Viscoplasticity


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Qi-yin Zhu, Ze-xiang Wu, Yan-ling Li, Chang-jie Xu, Jian-hua Wang, Xiao-he Xia. A modified creep index and its application to viscoplastic modelling of soft clays[J]. Journal of Zhejiang University Science A,in press.Frontiers of Information Technology & Electronic Engineering,in press.https://doi.org/10.1631/jzus.A1300331

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author="Qi-yin Zhu, Ze-xiang Wu, Yan-ling Li, Chang-jie Xu, Jian-hua Wang, Xiao-he Xia",
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%T A modified creep index and its application to viscoplastic modelling of soft clays
%A Qi-yin Zhu
%A Ze-xiang Wu
%A Yan-ling Li
%A Chang-jie Xu
%A Jian-hua Wang
%A Xiao-he Xia
%J Journal of Zhejiang University SCIENCE A
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doi="https://doi.org/10.1631/jzus.A1300331"

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A1 - Ze-xiang Wu
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A1 - Jian-hua Wang
A1 - Xiao-he Xia
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doi="https://doi.org/10.1631/jzus.A1300331"


Abstract: 
Conventional consolidation tests on reconstituted specimens of numerous natural soft clays show a decreasing of creep index C αe with increasing soil density. Based on all selected and conducted experimental results, a modified creep index C αe * defined in double logarithmic plane lge-lgt, was plotted for various clays, from which C αe * can be assumed as a constant for different soil densities. Then, the modified creep index was applied to a newly developed elastic viscoplastic model. In this way, the modified creep index C αe * can naturally take into account the nonlinear C αe revealing the influence of soil density in the soil assemblies without additional parameters. Finally, the enhanced model was incorporated into the finite element code ABAQUS and used to simulate a consolidation test and a test embankment. The improvement of simulations by the modified creep index was highlighted by comparing simulations using the conventional creep index C αe.

一个修正的蠕变系数及其在软黏土黏塑性模拟中的应用

研究目的:提出一个更优的描述黏土非线性蠕变的方法。
创新要点:1.提出了一个修正的蠕变系数,该系数与土体的密度相关,物理意义明确;2.将修正的蠕变系数嵌入到新开发的一个黏塑性模型中,实现了基于ABAQUS的本构二次开发;3.为工程实例的计算提供更为有效的模型。
研究方法:1.总结广泛的调查土体蠕变试验结果,提出修正的蠕变系数(图3);2.给出修正的蠕变系数表示方法以及力学特性(图4);3.将所提系数嵌入到有限元程序中,验证了其准确性(图5)。
重要结论:1.修正的蠕变系数可以很好地描述软黏土蠕变系数随孔隙比变化的规律;2.通过工程案例证实了修正系数的优越性。

关键词组:软黏土;蠕变;黏塑性;有限元

Darkslateblue:Affiliate; Royal Blue:Author; Turquoise:Article

References

[1] Augustesen,A, Liingaard,M, Lade,P.V, 2004, Evaluation of time-dependent behavior of soils  International Journal of Geomechanics, 4(3):137-156.


[2] Bjerrum,L, 1967, Engineering geology of Norwegian normally-consolidated marine clays as related to settlements of building  Gotechnique, 17(2):81-118.

[3] Hinchberger,S.D, Rowe,R, 1998, Modelling the rate-sensitive characteristics of the Gloucester foundation soil  Canadian Geotechnical Journal, 35(5):769-789.


[4] Hong,Z.X, 2007, Void ratio-suction behavior of remolded Ariake clays  Geotechnical Testing Journal, 30(3):234-239.

[5] Hong,Z.X, Onitsuka,K, 1998, A method of correcting yield stress and compression index of Ariake clays for sample disturbance  Soils and Foundations, 38(2):211-222.


[6] Karim,M.R, Gnanendran,C.T, Lo,S.C.R, 2010, Predicting the long-term performance of a wide embankment on soft soil using an elastic-viscoplastic model  Canadian Geotechnical Journal, 47(2):244-257.


[7] Karstunen,M, Yin,Z.Y, 2010, Modelling time-dependent behaviour of Murro test embankment  Gotechnique, 60(10):735-749.


[8] Karstunen,M, Krenn,H, Wheeler,S.J, 2005, Effect of anisotropy and destructuration on the behavior of Murro test embankment  International Journal of Geomechanics, 5(2):87-97.


[9] Katona,M, 1984, Evaluation of a viscoplastic cap model  Journal of Geotechnical Engineering, 110(8):1106-1125.


[10] Kutter,B.L, Sathialingam,N, 1992, Elastic-viscoplastic modelling of the rate-dependent behaviour of clays  Gotechnique, 42(3):427-441.


[11] Leoni,M, Karstunen,M, Vermeer,P.A, 2008, Anisotropic creep model for soft soils  Gotechnique, 58(3):215-226.


[12] Leroueil,S, Kabbaj,M, Tavenas,F, 1985, Stress-strain-strain rate relation for the compressibility of sensitive natural clays  Gotechnique, 35(2):159-180.


[13] Li,Q, Ng,C.W.W, Liu,G, 2012, Low secondary compressibility and shear strength of Shanghai Clay  Journal of Central South University, 19(8):2323-2332.


[14] Mesri,G, Godlewski,P, 1977, Time and stress compressibility interrelationship  Journal of the Geotechnical Engineering Division, 103(5):417-430.

[15] Oka,F, Adachi,T, Okano,Y, 1986, Two-dimensional consolidation analysis using an elasto-viscoplastic constitutive equation  International Journal for Numerical and Analytical Methods in Geomechanics, 10(1):1-16.


[16] Stapelfeldt,T, Lojander,M, Vepslinen,P, 2007, Determination of horizontal permeability of soft clay  Proceedings of 17th International Conference on Soil Mechanics and Foundation Engineering, Madrid, 3():1385-1389.

[17] Yin,J.H, Zhu,J.G, Graham,J, 2002, A new elastic viscoplastic model for time-dependent behaviour of normally and overconsolidated clays: theory and verification  Canadian Geotechnical Journal, 39(1):157-173.


[18] Yin,Z.Y, Hicher,P.Y, 2008, Identifying parameters controlling soil delayed behaviour from laboratory and in situ pressuremeter testing  International Journal for Numerical and Analytical Methods in Geomechanics, 32(12):1515-1535.


[19] Yin,Z.Y, Wang,J.H, 2012, A one-dimensional strain-rate based model for soft structured clays  Science in China Series E, 55(1):90-100.


[20] Yin,Z.Y, Chang,C.S, Karstunen,M, 2010, An anisotropic elastic viscoplastic model for soft soils  International Journal of Solids and Structures, 47(5):665-677.


[21] Yin,Z.Y, Karstunen,M, Chang,C.S, 2011, Modeling time-dependent behavior of soft sensitive clay  Journal of Geotechnical and Geoenvironmental Engineering, 137(11):1103-1113.


[22] Yin,Z.Y, Karstunen,M, Wang,J.H, 2011, Influence of features of natural soft clay on the behavior of embankment  Journal of Central South University of Technology, 18(5):1667-1676.


[23] Zeng,L.L, Hong,Z.S, Liu,S.Y, 2012, Variation law and quantitative evaluation of secondary consolidation behavior for remolded clays  Chinese Journal of Geotechnical Engineering, 34(8):1496-1500.

[24] Zhu,Q.Y, Jin,Y.F, Yin,Z.Y, Hicher,P.Y, 2013, Influence of natural deposition plane orientation on oedometric consolidation behavior of three typical clays from southeast coast of China  Journal of Zhejiang University-SCIENCE A (Applied Physics & Engineering), 14(11):767-777.



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